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aiming-lab/AutoResearchClaw

SkillsMP has collected 34 skills from aiming-lab/AutoResearchClaw. Open a skill to review its source and details.

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skills collected
34
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Skills in this repository

Showing 34 of 34 collected skills.

occupation
Biological Scientists, All Other
description

Run Flux Balance Analysis (FBA) and related constraint-based simulations using COBRApy. Covers standard FBA, parsimonious FBA (pFBA), Flux Variability Analysis (FVA), loopless FBA, gene/reaction knockouts, and carbon source swapping. Outputs flux…

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occupation
Biological Scientists, All Other
description

Analyse FBA flux distributions to extract biological insights. Covers gene essentiality, phenotypic phase planes, flux sampling, pathway-level aggregation, secretion product prediction, and production of publication- quality figures.

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occupation
Biological Scientists, All Other
description

Build or load a genome-scale metabolic model (GSMM) using COBRApy. Covers loading from BIGG, constructing minimal models from scratch, setting medium constraints, and exporting validated .json model files.

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occupation
Biological Scientists, All Other
description

Validate a COBRApy genome-scale metabolic model for mass/charge balance, stoichiometric consistency, biomass producibility, dead-end metabolites, thermodynamic loops, and GPR rule formatting. Outputs a structured validation report with errors and warnings.

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occupation
Biological Scientists, All Other
description

Plan publishable constraint-based metabolic modelling studies when the user has a broad biological or metabolic-engineering topic but no concrete dataset, organism, model, or hypothesis. Selects feasible BiGG/COBRA models, objectives, perturbations, analyses,…

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occupation
Biological Scientists, All Other
description

Orchestrate the full metabolic flux analysis pipeline from model loading to phenotype prediction and publication figures. Triggers when the user provides an organism name, BIGG model ID, or custom reaction list and wants end-to-end metabolic modelling run…

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occupation
Data Scientists
description

Orchestrate a statistical research pipeline centered on formal problem formulation, method proposal, theoretical analysis, experimental evaluation, comparison, and final result synthesis.

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occupation
Data Scientists
description

Validate statistical research outputs for formulation quality, method-to- problem alignment, theory presence, experimental evidence, fair comparison, artifact completeness, and final-claim consistency.

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occupation
Data Scientists
description

Design and run statistical experiments that test the formal problem, proposed methods, theoretical predictions, baselines, and ablations.

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occupation
Data Scientists
description

Design statistical methods, baselines, diagnostics, variants, and ablations that directly address a formal problem formulation.

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occupation
Data Scientists
description

Formulate statistical research problems with formal notation, target parameters, assumptions, hypotheses, evaluation criteria, and theory targets.

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occupation
Data Scientists
description

Analyze theoretical properties of statistical methods under the formal formulation: identifiability, bias, variance, consistency, asymptotics, coverage, error bounds, robustness, and limitations.

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occupation
Data Scientists
description

Reference qiskit 2.x patterns for variational quantum machine learning. Covers data-encoding feature maps, variational quantum classifier (VQC) training, variational quantum eigensolver (VQE) for chemistry, matrix-product-state circuits, and noise model…

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occupation
Computer Occupations, All Other
description

Run the ResearchClaw autonomous research pipeline from a topic, config, and output directory.

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occupation
Computer Occupations, All Other
description

Apply A-Evolve's agentic evolution methodology to improve AI agent performance across runs. Use when the user wants to diagnose agent failures, generate targeted skills from error patterns, evolve system prompts, or accumulate episodic knowledge. Works…

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occupation
Software Developers
description

Bioinformatics with Biopython for sequence manipulation, file parsing, BLAST, and phylogenetics. Use when working with DNA/RNA/protein sequences or biological databases.

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occupation
Data Scientists
description

Computational chemistry with RDKit for molecular analysis, descriptors, fingerprints, and substructure search. Use when working with SMILES, drug discovery, or cheminformatics tasks.

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occupation
Biological Scientists, All Other
description

Structured scientific hypothesis generation from observations. Use when formulating testable hypotheses, competing explanations, or experimental predictions.

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occupation
Postsecondary Teachers, All Other
description

Systematic literature review methodology including search strategy, screening, and synthesis. Use when conducting literature reviews or writing background sections.

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occupation
Software Developers
description

Publication-ready scientific figure design with matplotlib and seaborn. Use when creating journal submission figures with proper formatting, accessibility, and statistical annotations.

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occupation
Technical Writers
description

Academic manuscript writing with IMRAD structure, citation formatting, and reporting guidelines. Use when drafting or revising research papers.

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occupation
Data Scientists
description

Statistical test selection, assumption checking, and APA-formatted reporting. Use when analyzing experimental results or writing results sections.

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occupation
Software Developers
description

Best practices for image classification tasks. Use when working on CIFAR, ImageNet, or other classification benchmarks.

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occupation
Software Developers
description

Best practices for object detection tasks. Use when working on COCO, VOC, or detection architectures like YOLO and DETR.

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occupation
Software Developers
description

Best practices for LLM alignment techniques including RLHF, DPO, and instruction tuning. Use when working on alignment or safety.

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occupation
Software Developers
description

Best practices for language model pretraining and fine-tuning. Use when generating or reviewing NLP training code.

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occupation
Data Scientists
description

Best practices for reinforcement learning policy optimization. Use when working on RL agents, PPO, SAC, or reward design.

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occupation
Software Developers
description

Best practices for designing reproducible ML experiments. Use when planning ablations, baselines, or controlled experiments.

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occupation
Economists
description

Statistical methods for combining results across multiple studies. Use when aggregating cross-study or cross-experiment results.

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occupation
Postsecondary Teachers, All Other
description

Structured methodology for comprehensive literature review following PRISMA guidelines. Use during literature search and screening stages.

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occupation
Software Developers
description

Optimize data loading pipeline to prevent GPU starvation. Use when setting up DataLoader or data preprocessing.

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occupation
Software Developers
description

Multi-GPU and distributed training patterns with PyTorch DDP. Use when scaling training across GPUs.

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occupation
Software Developers
description

Use FP16/BF16 mixed precision to accelerate training and reduce memory. Use when optimizing GPU performance.

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occupation
Software Developers
description

Best practices for building robust PyTorch training loops. Use when generating or reviewing ML training code.

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Showing 34 of 34 collected skills.